Glasses leg pressure maintaining device

By designing a temple pressure-maintaining device that includes a clamping and pressurizing mechanism, the problems of manual fixation and deviation of the temples are solved, and stable pressurization and high-precision assembly are achieved.

CN223377561UActive Publication Date: 2025-09-23BEIJING XIAOMI MOBILE SOFTWARE CO LTD
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Patent Information

Application Number
CN202422850099.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-21
Publication Date
2025-09-23
Estimated Expiration
2034-11-21

AI Technical Summary

Technical Problem

The existing temple pressure-maintaining device requires manual fixing of the temple before fastening the cover plate, which makes the operation difficult. In addition, the inner and outer temples are easily displaced or separated when the glue is not cured, affecting the assembly accuracy.

Method used

A temple pressure-maintaining device is designed, which includes a base, a clamping mechanism, a first pressurizing mechanism and a second pressurizing mechanism. The clamping mechanism attracts and fixes the temples through a clamping arm and a magnet. The first pressurizing mechanism and the second pressurizing mechanism pressurize the inner and outer legs respectively. The secondary pressurizing mechanism is used for further pressurization, and is combined with a frame protection component to prevent shaking.

Benefits of technology

The stable fixation and pressurization operation of the temples are achieved without manual fixation, which reduces the complexity of operation, avoids the deviation of the inner and outer legs, and improves the assembly accuracy and safety.

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Abstract

The utility model provides a glasses leg pressure maintaining device, and belongs to the technical field of pressure maintaining jigs. The glasses leg pressure maintaining device comprises a base, a clamping mechanism, a first pressurizing mechanism and a second pressurizing mechanism. The base comprises a containing groove, the containing groove is used for containing the outer leg, and the containing groove comprises a first groove, a containing hole and a second groove which are communicated in sequence. The clamping mechanism is fixed in the containing hole and comprises two clamping arms, and the two clamping arms are used for clamping and fixing the outer leg and the inner leg. The first pressurizing mechanism is used for pressurizing the glasses legs in the first groove, and the second pressurizing mechanism is used for pressurizing the glasses legs in the second groove. Therefore, when the first pressurizing mechanism and the second pressurizing mechanism are placed on the glasses legs, the glasses legs are not easy to deviate. Therefore, when an operator installs the first pressurizing mechanism and the second pressurizing mechanism, the glasses legs do not need to be fixed by hands, so that the complexity of manual operation is reduced.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of pressure-maintaining fixtures, and in particular to a pressure-maintaining device for temples. Background Art

[0002] With the increasing miniaturization of smart glasses, key electronic components are often located in the temples. Therefore, the temples consist of an outer leg and an inner leg. The outer leg connects to the frame, and the electronic components are placed inside the outer leg, which is then snapped onto the inner leg. The inner and outer legs are connected using glue. Because the glue takes a long time to cure, a temple pressure-maintaining device is used to apply pressure to the outer and inner legs before curing, ensuring a more secure bond.

[0003] In the related art, the pressure maintaining device includes a base and a cover plate. After the inner legs and the outer legs are placed on the base, the cover plate is fastened.

[0004] However, before fastening the cover plate, the temples need to be fixed manually to prevent them from shifting, making manual operation more difficult. Utility Model Content

[0005] The present disclosure provides a temple pressure-maintaining device, which can solve the technical problems existing in the related art. The technical solution of the temple pressure-maintaining device is as follows.

[0006] The present disclosure provides a temple pressure-maintaining device, which is used to perform pressure-maintaining treatment on temples, wherein the temples include an outer leg and an inner leg, and the outer leg and the inner leg are connected;

[0007] The temple pressure-maintaining device comprises a base, a clamping mechanism, a first pressure mechanism and a second pressure mechanism;

[0008] The base includes a receiving groove, the receiving groove is used to receive the outer leg, and the receiving groove includes a first groove, a receiving hole and a second groove that are connected in sequence;

[0009] The clamping mechanism is fixed in the accommodating hole, and the clamping mechanism includes two clamping arms, and the two clamping arms are used to clamp and fix the outer leg and the inner leg;

[0010] The first pressing mechanism is used to pressurize the temple located in the first groove;

[0011] The second pressing mechanism is used to pressurize the temple located in the second groove.

[0012] In a possible implementation, the clamping mechanism includes two clamping arms, a clamping seat, and two first pins;

[0013] The clamping seat is fixed to the accommodating hole, and the two clamping arms are rotatably connected to the clamping seat via a first pin shaft respectively;

[0014] The clamping mechanism has an expanded state and a clamping state. In the expanded state, the two clamping arms are separated. In the clamping state, the two clamping arms are connected, and the inner walls of the two clamping arms abut against the side walls of the inner leg.

[0015] In a possible implementation, the two clamping arms respectively have a first magnet and a second magnet, and in the clamping state, the first magnet and the second magnet attract each other.

[0016] In a possible implementation, the clamping mechanism further includes a first elastic member;

[0017] Both ends of the first elastic member are respectively connected to one end of the two clamping arms close to the base, and the first elastic member is in a stretched state.

[0018] In a possible implementation, the second pressurizing mechanism includes a first pressurizing plate, a connecting block, a first pressurizing rubber block, and a second pin shaft;

[0019] The first pressure plate is connected to the base, the connecting block is rotatably connected to the first pressure plate through the second pin shaft, and the connecting block is located between the first pressure plate and the base, the first pressure rubber block is fixed to the side of the connecting block facing the base, the connecting block is used to drive the first pressure rubber block to rotate along the circumference of the second groove, and the first pressure rubber block is used to resist the temple located in the second groove.

[0020] In a possible implementation, the leg pressure-maintaining device further includes two secondary pressure mechanisms;

[0021] The secondary pressurizing mechanism is connected to the base, one of the secondary pressurizing mechanism covers the first pressurizing mechanism, and the other secondary pressurizing mechanism covers the second pressurizing mechanism.

[0022] In a possible implementation, the secondary pressurizing mechanism includes a first support plate, a second support plate, and a second elastic member;

[0023] The first support plate and the second support plate are opposite to each other, the second support plate is located between the first support plate and the base, the second elastic member is located between the first support plate and the second support plate, and the second support plates of the two secondary pressurizing mechanisms are respectively against the first pressurizing mechanism and the second pressurizing mechanism.

[0024] In a possible implementation, the secondary pressurizing mechanism includes a plurality of second elastic members and a plurality of bolts;

[0025] The first support plate has a plurality of bolt holes, the bolts pass through the bolt holes, and two ends of the second elastic member respectively abut against the bolts and the second support plate.

[0026] In a possible implementation, the first support plate has two first buckles, and the two first buckles are located on two opposite sides of the first support plate;

[0027] The temple pressure maintaining device also has two pairs of second buckles, which are fixed to the base. One pair of second buckles is located on both sides of the first groove, and the other pair of second buckles is located on both sides of the second groove. The second buckles are clamped with the first buckles.

[0028] In a possible implementation, the temple pressure-maintaining device further includes a frame protection component;

[0029] The frame protection assembly includes a first shell and a second shell, the first shell is fixed to the base, the first shell and the second shell are connected, the frame is fixed between the first shell and the second shell, the outer leg is connected to the frame, and the outer leg extends from between the first shell and the second shell.

[0030] The technical solution provided by the present disclosure includes at least the following beneficial effects:

[0031] The present disclosure provides a temple pressure-maintaining device that secures the temple to the base through the action of a clamping mechanism. This prevents the temple from shifting when the first and second pressure mechanisms are placed on the temple. Consequently, operators no longer need to manually secure the temple when installing the first and second pressure mechanisms, thereby reducing the complexity of manual operation.

[0032] It is to be understood that the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the disclosure. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] The accompanying drawings, which are incorporated into and constitute a part of the specification, illustrate embodiments consistent with the present disclosure and, together with the description, serve to explain the principles of the present disclosure. In the drawings:

[0034] Figure 1 is a schematic structural diagram of smart glasses shown in an embodiment of the present disclosure;

[0035] Figure 2 1 is a schematic structural diagram of a temple pressure-maintaining device according to an embodiment of the present disclosure;

[0036] Figure 3is a structural schematic diagram of a base shown in an embodiment of the present disclosure;

[0037] Figure 4 is a structural schematic diagram of a clamping mechanism shown in an embodiment of the present disclosure;

[0038] Figure 5 is a structural schematic diagram of a clamping mechanism shown in an embodiment of the present disclosure;

[0039] Figure 6 is a structural schematic diagram of a first pressurizing mechanism shown in an embodiment of the present disclosure;

[0040] Figure 7 is a structural schematic diagram of a second pressurizing mechanism shown in an embodiment of the present disclosure;

[0041] Figure 8 is a structural schematic diagram of a secondary pressurizing mechanism shown in an embodiment of the present disclosure;

[0042] Figure 9 is a structural schematic diagram of a second buckle shown in an embodiment of the present disclosure;

[0043] Figure 10 is a structural schematic diagram of a second buckle shown in an embodiment of the present disclosure;

[0044] Figure 11 1 is an exploded view of a lens frame protection assembly shown in an embodiment of the present disclosure;

[0045] Figure 12 1 is a structural diagram of a frame protection assembly shown in an embodiment of the present disclosure;

[0046] Figure 13 1 is a schematic structural diagram of a temple pressure-maintaining device according to an embodiment of the present disclosure;

[0047] Figure 14 1 is a schematic structural diagram of a temple pressure-maintaining device according to an embodiment of the present disclosure;

[0048] Figure 15 1 is a schematic structural diagram of a temple pressure-maintaining device according to an embodiment of the present disclosure;

[0049] Figure 16 1 is a schematic structural diagram of a temple pressure-maintaining device according to an embodiment of the present disclosure;

[0050] Figure 17 1 is a schematic structural diagram of a temple pressure-maintaining device according to an embodiment of the present disclosure;

[0051] Figure 18 It is a structural schematic diagram of a temple pressure-maintaining device shown in an embodiment of the present disclosure.

[0052] Legend:

[0053] 1. Base, 1a. First positioning magnet, 1b. Second positioning magnet, 1c. Third positioning magnet, 10. Accommodating slot, 11. First groove, 12. Accommodating hole, 13. Second groove, 14. First positioning post, 15. Second positioning post, 16. Second positioning hole, 17. Limiting hole;

[0054] 2. Clamping mechanism, 21. Clamping arm, 210. Wrench structure, 211. First magnet, 212. Second magnet, 22. Clamping seat, 221. Support plate, 222. Support column, 23. First pin, 24. First elastic member;

[0055] 3. First pressurizing mechanism, 31. Second pressurizing plate, 311. Position-limiting protrusion, 32. Second pressurizing rubber block, 321. Second pressurizing groove, 33. Connecting column;

[0056] 4. Second pressurizing mechanism, 41. First pressurizing plate, 411. Top plate, 412. Side plate, 413. Fixing plate, 4130. First positioning hole, 42. Connecting block, 43. First pressurizing rubber block, 431. First pressurizing groove, 44. Second pin;

[0057] 5. Secondary pressurizing mechanism, 51. First support plate, 510. Bolt hole, 511. First buckle, 52. Second support plate, 53. Second elastic member, 54. Bolt;

[0058] 6. Second buckle, 61. Support seat, 62. Flip buckle, 621. First bending portion, 622. Second bending portion, 623. Third bending portion, 63. Third pin, 64. Support column, 65. Third elastic member;

[0059] 7. Frame protection assembly, 71. First housing, 711. Third positioning post, 712. Fourth positioning magnet, 72. Second housing;

[0060] 100, temples, 101, outer legs, 102, inner legs;

[0061] 200. Picture frame.

[0062] The above drawings illustrate specific embodiments of the present disclosure, which will be described in more detail below. These drawings and textual descriptions are not intended to limit the scope of the present disclosure in any way, but rather to illustrate the concepts of the present disclosure to those skilled in the art by reference to specific embodiments. DETAILED DESCRIPTION

[0063] In order to make the objectives, technical solutions and advantages of the present disclosure more clear, the embodiments of the present disclosure will be further described in detail below with reference to the accompanying drawings.

[0064] The terms used in the embodiments of the present disclosure are intended only to explain the embodiments of the present disclosure and are not intended to limit the present disclosure. Unless otherwise defined, technical or scientific terms used herein should have the same ordinary meaning as those of ordinary skill in the art to which the present disclosure pertains. The terms "first," "second," "third," and similar terms used in the patent specification and claims of the present disclosure do not denote any order, quantity, or importance, but are merely used to distinguish between different components. Similarly, terms such as "a" or "an" do not denote a limitation on quantity, but rather denote the presence of at least one. Terms such as "include" or "comprising" mean that the elements or objects preceding the term "include" or "comprising" include the elements or objects listed after the term and their equivalents, and do not exclude other elements or objects. Terms such as "connected" or "connected" are not limited to physical or mechanical connections but may include electrical connections, whether direct or indirect. Terms such as "upper," "lower," "left," and "right" are used only to indicate relative positional relationships. When the absolute position of the described object changes, the relative positional relationship may also change accordingly.

[0065] With the development of miniaturization of smart glasses, key electronic components of smart glasses are usually arranged in the two temples 100 of smart glasses. Figure 1 As shown, the temples 100 of the smart glasses include an outer temple 101 and an inner temple 102. The outer temple 101 is connected to the frame 200. The outer temple 101 has a cavity. After placing the electronic components in the cavity of the outer temple 101, the inner temple 102 is snapped onto the outer temple 101. The inner temple 102 and the outer temple 101 are connected by glue. Because the glue curing takes a long time, a temple pressure-maintaining device is used to apply pressure to the outer temple 101 and the inner temple 102 before curing to ensure a more secure adhesion between the inner temple 102 and the outer temple 101.

[0066] In the related art, the pressure-maintaining device includes a base and a cover plate. After the inner leg 102 and the outer leg 101 are placed on the base, the cover plate is fastened. To ensure that the temple 100 does not deviate when the cover plate is fastened, the operator needs to manually fix the temple 100 while maintaining the pressure, and also needs to cover the temple 100 with the cover plate, which makes manual operation more difficult.

[0067] In view of the above technical problems, the embodiment of the present disclosure provides a temple pressure-maintaining device. The temple pressure-maintaining device is used to perform pressure-maintaining treatment on the temple 100, such as Figure 1 As shown, the temple 100 includes an outer leg 101 and an inner leg 102, and the outer leg 101 and the inner leg 102 are connected. Figure 2As shown, the temple pressure-maintaining device includes a base 1, a clamping mechanism 2, a first pressurizing mechanism 3, and a second pressurizing mechanism 4. The base 1 includes a receiving groove 10 for receiving an outer temple 101. The receiving groove 10 includes a first groove 11, a receiving hole 12, and a second groove 13 that are sequentially connected. The clamping mechanism 2 is fixed in the receiving hole 12 and includes two clamping arms 21 for clamping and fixing the outer temple 101 and the inner temple 102. The first pressurizing mechanism 3 is used to pressurize the temple 100 located in the first groove 11, and the second pressurizing mechanism 4 is used to pressurize the temple 100 located in the second groove 13.

[0068] The first groove 11 and the second groove 13 are used to accommodate the outer leg 101. After the inner leg 102 is snapped onto the outer leg 101, the clamping mechanism 2 clamps the inner leg 102 and the outer leg 101. The first pressing mechanism 3 and the second pressing mechanism 4 cover the inner leg 102. Before the first pressing mechanism 3 and the second pressing mechanism 4 are fixed to the base 1, the clamping mechanism 2 is used to clamp the temple 100.

[0069] The technical solution provided by the disclosed embodiments enables the temple 100 to be secured to the base by clamping mechanism 2, which clamps the inner leg 102 and outer leg 101 of the temple 100. This prevents the temple 100 from shifting when the first and second pressing mechanisms 3 and 4 are placed on the temple 100. Consequently, operators no longer need to manually secure the temple when installing the first and second pressing mechanisms 3 and 4, thereby reducing the complexity of manual operation.

[0070] Furthermore, in the related art, the glue applied between the inner leg 102 and the outer leg 101 is not yet cured before the cover is fastened. Therefore, during the cover fastening process, the inner leg 102 and the outer leg 101 are prone to mutual displacement or separation, thereby affecting assembly accuracy. In the disclosed embodiment, the clamping mechanism 2 is first used to clamp the inner leg 102 and the outer leg 101, thereby maintaining the inner and outer legs 102, 101 in an assembled state and preventing separation or displacement.

[0071] In some examples, such as Figure 3 As shown, in order to adapt to the shape of the temple 100, the bottom wall of the first groove 11 is straight or nearly straight, and the bottom wall of the second groove 13 is arc-shaped.

[0072] The following is an exemplary description of the implementation of the clamping mechanism 2.

[0073] In some examples, such as Figure 3 and Figure 4As shown, the clamping mechanism 2 includes two clamping arms 21, a clamping seat 22 and two first pins 23. The clamping seat 22 is fixed to the receiving hole 12, and the two clamping arms 21 are rotatably connected to the clamping seat 22 through a first pin 23. The clamping mechanism 2 has an expanded state and a clamped state. Figure 3 As shown, in the unfolded state, the two clamping arms 21 are separated. The distance between the two clamping arms 21 is greater than the width of the first groove 11 and the second groove 13. When the outer leg 101 is placed in the receiving groove 10, the outer leg is located between the two clamping arms 21. Figure 4 As shown, in the clamping state, the two clamping arms 21 are connected, and the inner walls of the two clamping arms 21 abut against the side walls of the inner leg 102 .

[0074] For example, Figure 3 and Figure 4 As shown, the clamping seat 22 includes a support plate 221 and four support columns 222. The support columns 222 are fixed to the support plate 221. The two ends of each first pin 23 are respectively connected to a support column 222, and the first pin 23 is connected to the end of the support column 222 away from the support plate 221.

[0075] In some examples, the two clamping arms 21 each have a first magnet 211 and a second magnet 212. In the clamping state, the first magnet 211 and the second magnet 212 attract each other. Thus, when the inner leg 102 is engaged with the outer leg 101, the clamping mechanism 2 maintains the clamping state through magnetic attraction. Operators simply rotate the two clamping arms 21, making operation relatively simple.

[0076] In some examples, the clamping mechanism 2 further includes a first elastic member 24. The first elastic member 24 is connected at both ends to the ends of the two clamping arms 21 closest to the base 1, and the first elastic member 24 is in a stretched state. When the operator does not apply external force to the clamping arms 21, the ends of the two clamping arms 21 closest to the base 1 move closer together due to the tension of the first elastic member 24. Since the two clamping arms 21 are pivotally connected to the clamping seat 22, the ends of the two clamping arms 21 further away from the base 1 move away from each other, thereby maintaining the clamping mechanism 2 in the extended state. This allows the temple 100 to be smoothly placed between the two clamping arms 21.

[0077] It is understandable that when the two clamping arms 21 are connected, the magnetic attraction between the first magnet 211 and the second magnet 212 is greater than the tensile force of the first elastic member 24 , thereby enabling the clamping arms 21 to remain in the clamping state.

[0078] In some examples, such as Figure 3 and Figure 4As shown, each clamping arm 21 has a wrench structure 210 at one end away from the clamping seat 22. The operator can hold the wrench structure 210 and rotate the two clamping arms 21, thereby switching the clamping mechanism 2 between the expanded state and the clamped state.

[0079] The following is an illustrative description of the implementation of the first pressurizing mechanism 3 and the second pressurizing mechanism 4 .

[0080] (1) First pressurizing mechanism 3

[0081] In some examples, such as Figure 6 As shown, the first pressurizing mechanism 3 includes a second pressurizing plate 31 and a second pressurizing rubber block 32. The second pressurizing plate 31 is connected to the base 1, and the second pressurizing rubber block 32 is fixed to the side of the second pressurizing plate 31 facing the base 1. The second pressurizing rubber block 32 is used to abut against the temple 100 located in the first groove 11. The second pressurizing rubber block 32 is elastic, and while applying pressure to the temple 100, it also provides cushioning and protection, preventing damage to the temple 100 caused by excessive pressure.

[0082] like Figure 6 As shown, the second pressurizing rubber block 32 has a second pressurizing groove 321 , and the inner wall of the second pressurizing groove 321 abuts against the temple 100 .

[0083] In some examples, such as Figure 3 As shown, the base 1 has two first positioning columns 14. Figure 6 As shown, the second pressure plate 31 has two opposite side walls with limiting protrusions 311. Figure 15 As shown, the outer wall of the first positioning post 14 abuts against the sidewall of the second pressure plate 31 and the sidewall of the limiting protrusion 311. Furthermore, one first positioning post 14 is located on the side of one limiting protrusion 311 closer to the second pressure mechanism 4, while the other first positioning post 14 is located on the side of the other limiting protrusion 311 farther from the second pressure mechanism 4. This allows the first pressure mechanism 3 to be limited in both a first direction and a second direction, where the first direction is parallel to the axial direction of the first groove 11 and the second direction is perpendicular to the axial direction of the second groove.

[0084] For example, Figure 6 As shown, the first pressurizing mechanism 3 further includes a plurality of connecting posts 33, one end of each of which is connected to the second pressurizing plate 31 and the other end of each of which abuts against the base 1. The plurality of connecting posts 33 surround the second pressurizing rubber block 32. When the connecting posts 33 abut against the base 1, the second pressurizing rubber block 32 is compressed, thereby applying pressure to the temple 100.

[0085] In some examples, such as Figure 3As shown, the base 1 has a plurality of first positioning magnets 1a, and the plurality of first positioning magnets 1a are distributed on both sides of the first groove 11. Accordingly, the bottom of the connecting column 33 also has a magnet, so that the connecting column 33 is adsorbed on the first positioning magnet 1a. This achieves the limitation of the first pressurizing mechanism 3 in the third direction, so that the first pressurizing mechanism 3 is fixed to the base 1. When the operator places the first pressurizing mechanism 3, after aligning the connecting column 33 with the first positioning magnet 1a, the connecting column 33 can be adsorbed on the base 1 under the action of the magnetic attraction, making the operation relatively simple.

[0086] (2) Second pressurizing mechanism 4

[0087] In some examples, such as Figure 7 As shown, the second pressurizing mechanism 4 includes a first pressurizing plate 41 and a first pressurizing rubber block 43. In the related art, the first section of the temple 100 is straight or nearly straight, and the pressure applied by the first pressurizing mechanism 3 to the temple 100 is perpendicular to the bottom wall of the first groove 11, so that the inner leg 102 and the outer leg 101 are tightly connected. However, in order to adapt to the shape of the user's head and ear, the second end of the temple 100 is usually set to an irregular shape (such as an arc, etc.), which makes the shape of the second section of the temple 100 more complex, that is, the shape of the inner leg 102 and the outer leg 101 more complex. In this way, when the second pressurizing mechanism 4 is fixed to the base 1, the direction in which the first pressurizing rubber block 43 applies pressure to the temple 100 may make it difficult to ensure that the inner leg 102 and the outer leg 101 are tightly connected.

[0088] Therefore, if Figure 7 As shown, the second pressurizing mechanism 4 also includes a connecting block 42 and a second pin 44. The first pressurizing plate 41 is connected to the base 1. The connecting block 42 is rotatably connected to the first pressurizing plate 41 via the second pin 44, and the connecting block 42 is located between the first pressurizing plate 41 and the base 1. A first pressurizing rubber block 43 is fixed to the side of the connecting block 42 facing the base 1. The connecting block 42 is used to drive the first pressurizing rubber block 43 to rotate along the circumference of the second groove 13. The first pressurizing rubber block 43 is used to abut against the temple 100 located in the second groove 13. In this way, when the second pressurizing mechanism 4 is connected to the base 1, it can adapt to the shape of the temple 100.

[0089] The first pressurizing rubber block 43 has a first pressurizing groove 431 . When the first pressurizing rubber block 43 rotates, the first pressurizing groove 431 can be ensured to abut against the temple 100 , thereby pressurizing the temple 100 .

[0090] In some examples, such as Figure 7As shown, the first pressure plate 41 includes a top plate 411, two side plates 412, and two pairs of fixing plates 413. The two side plates 412 are connected to the first pressure plate 41, and the connecting block 42 and the first pressure rubber block 43 are located between the two side plates 412. The two pairs of fixing plates 413 are connected to the ends of the two side plates 412 away from the top plate 411, and the fixing plates 413 are arranged in a curved manner with the side plates 412 and connected to the base 1.

[0091] For example, Figure 3 As shown, the base 1 has at least two second positioning posts 15, and each pair of fixing plates 413 has at least two first positioning holes 4130. Each second positioning post 15 extends into one first positioning hole 4130, thereby achieving the limitation of the second pressing mechanism 4 in the first direction and the second direction.

[0092] In some examples, such as Figure 3 As shown, the base 1 has at least two second positioning magnets 1b, with multiple second positioning magnets 1b distributed on both sides of the second groove 13. Accordingly, each pair of fixing plates 413 also has magnets, and the fixing plates 413 are secured to the base 1 through the magnetic attraction of the second positioning magnets 1b. When placing the first pressurizing mechanism 3, the operator inserts the second positioning post 15 into the first positioning hole 4130. The magnetic attraction allows the fixing plates 413 to be attached to the base 1, simplifying operation.

[0093] When performing the pressure-maintaining operation on the temple 100, it is necessary to apply a relatively large pressure (e.g., 5 kg) to the temple 100. However, the pressure-maintaining process is a manual operation. If the first pressurizing mechanism 3 and the second pressurizing mechanism 4 are directly used to apply a relatively large pressure to the temple 100, the operator needs to use a relatively large force to make the second pressurizing rubber block 32 and the first pressurizing rubber block 43 have a relatively large compression amount, resulting in a relatively difficult operation process. In addition, there is a risk that the temple 100 will break if it is suddenly subjected to a relatively large pressure. For this reason, the embodiment of the present disclosure first uses the first pressurizing mechanism 3 and the second pressurizing mechanism 4 to apply a relatively small pressure to the temple 100 to ensure that the outer leg 101 and the outer leg 101 can fit tightly together. Then, two secondary pressurizing mechanisms 5 are used to perform a secondary pressurization on the temple 100.

[0094] In some examples, such as Figure 2 and Figure 18 As shown, the secondary pressurizing mechanism 5 is connected to the base 1, with one secondary pressurizing mechanism 5 covering the first pressurizing mechanism 3 and the other secondary pressurizing mechanism 5 covering the second pressurizing mechanism 4. The two secondary pressurizing mechanisms 5 are then used to pressurize the first pressurizing mechanism 3 and the second pressurizing mechanism 4 respectively, thereby applying greater pressure to the temple 100.

[0095] It should be noted that after the first pressurizing mechanism 3 and the second pressurizing mechanism 4 are fixed to the base 1, the entire temple pressure-maintaining device can be placed on a pressure-maintaining equipment platform. The equipment platform has a robotic arm that can clamp the secondary pressurizing mechanism 5 and fix it to the base 1.

[0096] For example, Figure 3 As shown, the base 1 has three limiting holes 17 , and the temple pressure-maintaining device is fixedly connected to the limiting columns of the pressure-maintaining device platform through the limiting holes 17 .

[0097] Next, the implementation of the secondary pressurizing mechanism 5 is described as an example.

[0098] In some examples, such as Figure 8 As shown, the secondary pressurizing mechanism 5 includes a first support plate 51, a second support plate 52, and a second elastic member 53. The first support plate 51 and the second support plate 52 are opposite to each other, the second support plate 52 is located between the first support plate 51 and the base 1, and the second elastic member 53 is located between the first support plate 51 and the second support plate 52. The second support plates 52 of the two secondary pressurizing mechanisms 5 are respectively against the first pressurizing mechanism 3 and the second pressurizing mechanism 4. In the process of pressing down the secondary pressurizing mechanism 5, the second elastic member 53 will gradually compress. Under the action of the second elastic member 53, the pressure on the second support plate 52 gradually increases. In this way, the pressure on the first pressurizing mechanism 3 and the second pressurizing mechanism 4 can be gradually increased, thereby playing a buffering role and preventing the first pressurizing mechanism 3 and the second pressurizing mechanism 4 from being damaged due to sudden high pressure.

[0099] In some examples, such as Figure 8 As shown, the secondary pressure mechanism 5 includes multiple second elastic members 53 and multiple bolts 54. The first support plate 51 has multiple bolt holes 510, through which the bolts 54 extend. The ends of the second elastic members 53 abut against the bolts 54 and the second support plate 52, respectively. After the secondary pressure mechanism 5 is secured to the base 1, the compression of the second elastic members 53 can be adjusted by adjusting the depth of the bolts 54 in the bolt holes 510. This, in turn, adjusts the pressure on the second support plate 52 and, consequently, the pressure on the temple 100.

[0100] In some examples, such as Figure 8 As shown, the first support plate 51 has two first buckles 511, and the two first buckles 511 are located on two opposite sides of the first support plate 51. Figure 3As shown, the temple pressure-maintaining device further comprises two pairs of second buckles 6. The two pairs of second buckles 6 are fixed to the base 1, with one pair of second buckles 6 located on either side of the first groove 11, and the other pair of second buckles 6 located on either side of the second groove 13. The second buckles 6 engage with the first buckles 511. This engagement ensures the connection strength between the secondary pressure mechanism 5 and the base 1, preventing the secondary pressure mechanism 5 from separating from the base 1, which would reduce the pressure on the temple 100.

[0101] For example, Figure 9 and Figure 10 As shown, the second buckle 6 includes a support base 61, a flip buckle 62, a third pin 63, a support column 64, and a third elastic member 65. The support base 61 is fixed to the base 1. The flip buckle 62 includes a first bent portion 621, a second bent portion 622, and a third bent portion 623 connected in sequence. The second bent portion 622 is rotatably connected to the support base 61 via the third pin 63. The first bent portion 621 and the third bent portion 623 are respectively located on both sides of the support base 61, and both are bent relative to the second bent portion 622. The first bent portion 621 is engaged with the first buckle 511. One end of the support column 64 is fixed to the third bent portion 623, and the other end is opposite to the support base 61. The third elastic member 65 is encircled by the support column 64, and the third elastic member 65 is in a compressed state.

[0102] The first bent portion 621 has an inclined surface. When the secondary pressurizing mechanism 5 is installed, the first buckle 511 contacts the inclined surface. Under the pressure of the first buckle 511, the flip buckle 62 rotates in a first rotational direction, causing the first buckle 511 to pass over the first bent portion 621. After the first buckle 511 passes over the first bent portion 621, the flip buckle 62 rotates in a second rotational direction, thereby engaging the first bent portion 621 with the first buckle 511. The first rotational direction and the second rotational direction are opposite. When the first bent portion 621 is engaged with the first buckle 511, the third elastic member 65 is in a compressed state, thus exerting a force on the third bent portion 623 away from the support base 61. Driven by the third bent portion 623, the first bent portion 621 is forced toward the support base 61, causing the first bent portion 621 to exert greater pressure on the first buckle 511, ensuring a strong engagement force between the first buckle 511 and the flip buckle 62. When removing the secondary pressurizing mechanism 5 , the operator just needs to turn the flip buckle 62 .

[0103] Before the pressure-maintaining operation is performed on the temple 100, the outer leg 101 is already connected to the frame 200. During the pressure-maintaining operation, the operator may touch the frame 200 with the component used for applying pressure, thereby damaging the frame 200. Therefore, in some examples, the temple pressure-maintaining device further includes a frame protection component 7.

[0104] Next, the lens frame protection assembly 7 is exemplarily described.

[0105] In some examples, such as Figure 11 and Figure 12 As shown, the frame protection assembly 7 includes a first shell 71 and a second shell 72. The first shell 71 is fixed to the base 1 and connected to the second shell 72. The frame 200 is fixed between the first shell 71 and the second shell 72. The outer leg 101 is connected to the frame 200 and extends from between the first shell 71 and the second shell 72. On the one hand, the frame protection assembly 7 can protect the frame 200. On the other hand, the frame protection assembly 7 can fix the frame 200, thereby preventing the frame 200 from shaking and causing the temples 100 to shake in the receiving slot 10.

[0106] In some examples, such as Figure 11 and Figure 12 As shown, the side wall of the first shell 71 has a third positioning column 711. Figure 3 As shown, the base 1 has two second positioning holes 16, and the third positioning column 711 extends into the second positioning holes 16, thereby achieving the limitation of the frame protection component 7 in the first direction and the second direction.

[0107] In some examples, such as Figure 11 and Figure 12 As shown, the base 1 has a third positioning magnet 1c. Accordingly, the first housing 71 also has a fourth positioning magnet 712. When the positioning post 711 is located in the second positioning hole 16, the third positioning magnet 1c and the fourth positioning magnet 712 attract each other, thereby limiting the position of the frame protection assembly 7 in the third direction.

[0108] Below, a process in which an operator performs a pressure-maintaining operation on the temple 100 using the temple pressure-maintaining device provided in an embodiment of the present disclosure is exemplarily described.

[0109] The first step, such as Figure 11 and Figure 12 As shown, a set of smart glasses products is picked up, the frame 200 is placed on the first shell 71 , and the second shell 72 is fastened to the first shell 71 .

[0110] The second step is Figure 13 As shown, the frame protection assembly 7 is fixed to the base 1 , and the outer leg 101 is located in the receiving groove 10 .

[0111] The third step, such as Figure 14 As shown, grab the inner leg 102 and assemble it to the outer leg 101, and manually push the two clamping arms 21 to clamp and fix the temple 100.

[0112] The fourth step is as follows Figure 15As shown, the first pressing mechanism 3 is fixed to the base 1 .

[0113] Step 5: Figure 16 As shown, the second pressing mechanism 4 is fixed to the base 1 .

[0114] Step 6: Figure 17 and Figure 18 As shown, the entire temple pressure-maintaining device is placed on a pressure-maintaining equipment platform. The pressure-maintaining equipment platform places two secondary pressure mechanisms 5 above the first pressure mechanism 3 and the second pressure mechanism 4 respectively, and fixes the two secondary pressure mechanisms 5 to the base 1.

[0115] The above descriptions are merely optional embodiments of the present disclosure and are not intended to limit the present disclosure. Any modifications, equivalent replacements, improvements, etc. made within the principles of the present disclosure shall be included in the scope of protection of the present disclosure.

Claims

1. A temple pressure-maintaining device, characterized in that: The temple pressure-maintaining device is used for performing pressure-maintaining treatment on the temple (100), wherein the temple (100) comprises an outer leg (101) and an inner leg (102), and the outer leg (101) and the inner leg (102) are connected; The temple pressure-maintaining device comprises a base (1), a clamping mechanism (2), a first pressurizing mechanism (3) and a second pressurizing mechanism (4); The base (1) comprises a receiving groove (10), the receiving groove (10) is used to receive the outer leg (101), and the receiving groove (10) comprises a first groove (11), a receiving hole (12), and a second groove (13) which are connected in sequence; The clamping mechanism (2) is fixed in the accommodating hole (12), and the clamping mechanism (2) comprises two clamping arms (21), and the two clamping arms (21) are used to clamp and fix the outer leg (101) and the inner leg (102); The first pressurizing mechanism (3) is used to pressurize the temple (100) located in the first groove (11); The second pressurizing mechanism (4) is used to pressurize the temple (100) located in the second groove (13).

2. The temple pressure-maintaining device according to claim 1, wherein: The clamping mechanism (2) comprises two clamping arms (21), a clamping seat (22) and two first pins (23); The clamping seat (22) is fixed to the accommodating hole (12), and the two clamping arms (21) are rotatably connected to the clamping seat (22) via each of the first pin shafts (23); The clamping mechanism (2) has an expanded state and a clamping state. In the expanded state, the two clamping arms (21) are separated. In the clamping state, the two clamping arms (21) are connected, and the inner walls of the two clamping arms (21) abut against the side walls of the inner leg (102).

3. The temple pressure-maintaining device according to claim 2, wherein: The two clamping arms (21) respectively have a first magnet (211) and a second magnet (212). In the clamping state, the first magnet (211) and the second magnet (212) attract each other.

4. The temple pressure-maintaining device according to claim 2, wherein: The clamping mechanism (2) further includes a first elastic member (24); Both ends of the first elastic member (24) are respectively connected to one end of the two clamping arms (21) close to the base (1), and the first elastic member (24) is in a stretched state.

5. The temple pressure-maintaining device according to claim 1, wherein: The second pressurizing mechanism (4) comprises a first pressurizing plate (41), a connecting block (42), a first pressurizing rubber block (43) and a second pin shaft (44); The first pressure plate (41) is connected to the base (1), the connecting block (42) is rotatably connected to the first pressure plate (41) via the second pin shaft (44), and the connecting block (42) is located between the first pressure plate (41) and the base (1), the first pressure rubber block (43) is fixed to the side of the connecting block (42) facing the base (1), the connecting block (42) is used to drive the first pressure rubber block (43) to rotate along the circumference of the second groove (13), and the first pressure rubber block (43) is used to abut against the temple (100) located in the second groove (13).

6. The temple pressure-maintaining device according to any one of claims 1 to 5, characterized in that: The leg pressure maintaining device further comprises two secondary pressure applying mechanisms (5); The secondary pressurizing mechanism (5) is connected to the base (1), one of the secondary pressurizing mechanism (5) covers the first pressurizing mechanism (3), and the other of the secondary pressurizing mechanism (5) covers the second pressurizing mechanism (4).

7. The temple pressure-maintaining device according to claim 6, wherein: The secondary pressurizing mechanism (5) comprises a first support plate (51), a second support plate (52) and a second elastic member (53); The first support plate (51) and the second support plate (52) are opposite to each other, the second support plate (52) is located between the first support plate (51) and the base (1), the second elastic member (53) is located between the first support plate (51) and the second support plate (52), and the second support plates (52) of the two secondary pressurizing mechanisms (5) are respectively against the first pressurizing mechanism (3) and the second pressurizing mechanism (4).

8. The temple pressure-maintaining device according to claim 7, characterized in that: The secondary pressurizing mechanism (5) includes a plurality of second elastic members (53) and a plurality of bolts (54); The first support plate (51) has a plurality of bolt holes (510), the bolts (54) pass through the bolt holes (510), and the two ends of the second elastic member (53) respectively abut against the bolts (54) and the second support plate (52).

9. The temple pressure-maintaining device according to claim 7, wherein: The first support plate (51) has two first buckles (511), and the two first buckles (511) are located on two opposite sides of the first support plate (51); The temple pressure-maintaining device further comprises two pairs of second buckles (6), the two pairs of second buckles (6) being fixed to the base (1), one pair of the second buckles (6) being located on both sides of the first groove (11), and the other pair of the second buckles (6) being located on both sides of the second groove (13), and the second buckles (6) being engaged with the first buckles (511).

10. The temple pressure maintaining device according to any one of claims 1 to 5, characterized in that: The temple pressure-maintaining device further comprises a frame protection component (7); The spectacles frame protection assembly (7) comprises a first shell (71) and a second shell (72), wherein the first shell (71) is fixed to the base (1), the first shell (71) and the second shell (72) are connected, the spectacles frame (200) is fixed between the first shell (71) and the second shell (72), the outer leg (101) is connected to the spectacles frame (200), and the outer leg (101) extends from between the first shell (71) and the second shell (72).

Citation Information

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